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Investigating creep rupture and damage behaviour in notched P92 steel specimen using a microscale modelling approach
Author(s) -
Zhao L.,
Alang N.,
Nikbin K.
Publication year - 2018
Publication title -
fatigue and fracture of engineering materials and structures
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.887
H-Index - 84
eISSN - 1460-2695
pISSN - 8756-758X
DOI - 10.1111/ffe.12713
Subject(s) - materials science , creep , microscale chemistry , finite element method , composite material , grain boundary , voronoi diagram , microstructure , structural engineering , crystallite , crack tip opening displacement , intergranular corrosion , metallurgy , fracture mechanics , crack closure , geometry , engineering , mathematics , mathematics education
Idealized random grains separated by pseudo grain boundaries were generated by using Voronoi tessellation to simulate the polycrystalline microstructure. Combined with finite element analyses, this approach made it possible to addressing crack initiation and progressive failure due to crack growth in notched bar geometries of P92 steel at high temperature. The calculations provided good predictions for creep rupture lives of notched specimen with different notch radii and external stress. Simultaneously, irregular crack growth shape, intergranular crack mode, and wedge cracks at triple grain interaction were captured in the model. The crack initiation positions were found to be influenced by notch radius and applied stress causing high stress triaxiality at the subgrain level. Furthermore, the preferential crack growth directions were changed as the notch varied from sharp to blunt.